A pixel display component used in a display screen, includes a light-emitting unit and an anode. The anode includes a first anode portion and a second anode portion arranged in a direction parallel to the display screen. The first anode portion includes a light-transmitting material, and the second anode portion includes a non-light-transmitting material. The light-emitting unit is arranged between a cathode and the anode of the display screen, and the anode is arranged between a substrate of the display screen and the light-emitting unit.
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8. A pixel display component used in a display screen, comprising:
a light-emitting unit and an anode, wherein:
the anode comprises a first anode portion and a second anode portion arranged in a direction parallel to the display screen, the first anode portion comprises a light-transmitting material, and the second anode portion comprises a non-light-transmitting material; and
the light-emitting unit is arranged between a cathode and the anode, the cathode comprises a silver-magnesium mixed material, and the anode is arranged between a substrate of the display screen and the light-emitting unit.
1. A pixel display component used in a display screen, comprising:
a light-emitting unit and an anode, wherein:
the anode comprises a first anode portion and a second anode portion arranged in a direction parallel to the display screen, the first anode portion comprises an indium tin oxide (ITO) material as a light-transmitting material, and the second anode portion comprises a mixed material or laminated material of the ITO material and a silver material as a non-light-transmitting material; and
the light-emitting unit is arranged between a cathode and the anode, and the anode is arranged between a substrate of the display screen and the light-emitting unit.
13. A terminal, comprising:
a display screen comprising a first screen display component; and
an under-screen component arranged under the display screen,
wherein the first screen display component comprises:
a light-emitting unit and an anode, wherein:
the anode comprises a first anode portion and a second anode portion arranged in a direction parallel to the display screen, the first anode portion comprises a light-transmitting material, and the second anode portion comprises a non-light-transmitting material; and
the light-emitting unit is arranged between a cathode and the anode, and the anode is arranged between a substrate of the display screen and the light-emitting unit;
wherein the first screen display component is arranged in a first screen region of the display screen, the first screen region corresponding to the under-screen component;
wherein the light-emitting unit and the anode are included in a pixel display component of the first screen display component, and a proportion of a non-light-transmission area of the pixel display component is positively correlated with a center distance; and
wherein the proportion of the non-light-transmission area is a ratio of an area of the second anode portion in the pixel display component to an area of the anode in the pixel display component, and the center distance is a distance between a center of the anode and a center of the under-screen component.
2. The pixel display component according to
the first anode portion completely or incompletely surrounds the second anode portion.
3. The pixel display component according to
4. The pixel display component according to
5. The pixel display component according to
the light-emitting unit comprises a first light-emitting unit portion and a second light-emitting unit portion;
the first light-emitting unit portion corresponds to the first anode portion, and the second light-emitting unit portion corresponds to the second anode portion; and
the first light-emitting unit portion is connected to the second light-emitting unit portion.
6. The pixel display component according to
the light-emitting unit comprises a first light-emitting unit portion and a second light-emitting unit portion;
the first light-emitting unit portion corresponds to the first anode portion, and the second light-emitting unit portion corresponds to the second anode portion; and
the first light-emitting unit portion is spaced apart from the second light-emitting unit portion by a pixel define layer (PDL).
7. The pixel display component according to
9. The pixel display component according to
a light transmittance of a material of the cathode is greater than that of the silver-magnesium mixed material.
10. A screen display component, comprising at least one pixel display component according to
11. The screen display component according to
wherein the drive circuit is arranged at a location other than a location of the at least one pixel display component.
12. The screen display component according to
wherein the drive circuit is arranged between the second anode portion of the at least one pixel display component and the substrate.
14. The terminal according to
15. The terminal according to
16. The terminal according to
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The present application is based upon and claims priority to Chinese Patent Application No. 201910441948.3, filed on May 24, 2019, the entire content of which is incorporated herein by reference.
The present disclosure relates to the field of display technologies, and more particularly, to a pixel display component, a screen display component, a display screen, and a terminal.
With the rapid development of smart terminal technologies, full screens have gradually become the mainstream screens of existing smart terminals such as smart phones.
In related technologies, according to a method for preventing a full screen from shielding a sensor on the front side of a terminal and a front camera, the sensor and the front camera are arranged under the display screen, and a material of an anode of the display screen is replaced with a light-transmitting material.
According to a first aspect of embodiments of the present disclosure, there is provided a pixel display component. The pixel display component is used in a display screen and includes a light-emitting unit and an anode. The anode includes a first anode portion and a second anode portion arranged in a direction parallel to the display screen. The first anode portion includes a light-transmitting material, and the second anode portion includes a non-light-transmitting material.
According to a second aspect of the embodiments of the present disclosure, there is provided a screen display component, which includes at least one pixel display component according to the first aspect.
According to a third aspect of the embodiments of the present disclosure, there is provided a screen display, which includes at least one first screen display component. The first screen display component is the screen display component according to the second aspect.
According to a fourth aspect of the embodiments of the present disclosure, there is provided a terminal, which includes at least one display screen according to the third aspect.
The technical solutions provided by the embodiments of the present disclosure at least include following beneficial effects.
The pixel display component is used in a display screen, and the pixel display, component includes a light-emitting unit and an anode. The anode includes a first anode portion and a second anode portion arranged in a direction parallel to the display screen. The first anode portion includes a light-transmitting material, and the second anode portion includes a non-light-transmitting material. The light-emitting unit is arranged between a cathode and the anode of the display screen, and the anode is arranged between a substrate of the display screen and the light-emitting unit. According to the present disclosure, the first anode portion and the second anode portion are arranged in the pixel display component, and the first anode portion has a better effect on diverging light emitted from the light-emitting unit. In this way, the display effect of a location of the pixel display component is improved under the premise of ensuring light transmittance of the location of the pixel display component in the display screen.
It is to be understood that the above general description and the detailed description below are merely exemplary and explanatory, and do not limit the present disclosure.
The accompanying drawings herein are incorporated in and constitute a part of this specification, illustrate embodiments conforming to the present disclosure and, together with the description, serve to explain the principles of the present disclosure.
Reference will now be made in detail to exemplary embodiments, examples of which are illustrated in the accompanying drawings. The following description refers to the accompanying drawings in which the same numbers in different drawings represent the same or similar elements, unless otherwise represented. The implementations set forth in the following exemplary embodiments do not represent all implementations consistent with the present disclosure. Instead, they are merely examples of apparatuses and methods consistent with aspects related to the present disclosure as recited in the appended claims.
Embodiments of the present disclosure may be used in an application scenario in the design of a display screen in a smart device.
In the embodiments, a pixel, also referred to as an image element, may be the smallest unit representing an image. For example, an image may be constituted by a plurality of small blocks, each of these small blocks has an explicit location and an assigned color value, and these small blocks may be considered as pixels of the image. When a screen (such as a display screen) of a computer device displays an image, one pixel of the image may be displayed through one or more pixel display components.
In the embodiments, a drive circuit may include seven thin film transistors (TFTs) and one storage capacitor (C), which may be referred to as a 7T1C circuit.
In the embodiments, vapor deposition is a method in which a plating material is heated in a vacuum environment, such that the plating material is vaporized and deposited on a surface of a material to be plated to obtain a thin film material.
In an embodiment, the drive circuit 106 may be fabricated using low temperature poly-silicon (UPS) or indium gallium zinc oxide (IGZO) display technology. In an embodiment, the drive circuit 106 may further include a scan line and a data line.
In the structure as shown in
In some embodiments, in order to prevent the device such as the camera or the sensor arranged under the display screen from being shielded from light, the stacked arrangement of the pixel display components of the OLED may be adjusted.
In some embodiments, a stronger light transmittance of a certain region in the display screen in
The anode 402 includes a first anode portion 402a and a second anode portion 402h arranged in a direction parallel to the display screen. In an embodiment, a material of the first anode portion 402a is a light-transmitting material, and a material of the second anode portion 402b includes a non-light-transmitting material.
In an embodiment, the direction parallel to the display screen may be a transverse indication direction as shown in
In an embodiment, the material of the first anode portion 402a may be a light-transmitting material, and a material of the second anode portion 402b may be a non-light-transmitting material. In an embodiment, the light-transmitting material and the non-light-transmitting material may be defined by the light transmittance of the material. For example, if the light transmittance of a first material is not less than that of the ITO material, the first material may be referred to as the light-transmitting material. If the light transmittance of a second material is less than that of the ITO material, the first material may be referred to as the non-light-transmitting material.
In an embodiment, shown in
In the embodiments of the present disclosure, a pixel display component is used in the display screen, and the pixel display component includes a light-emitting unit and an anode. The anode includes a first anode portion and a second anode portion arranged transversely. The material of the first anode portion is a light-transmitting material, and the material of the second anode portion is a non-light-transmitting material. The light-emitting unit is arranged between the cathode and the anode of the display screen, and the anode is arranged between the substrate of the display screen and the light-emitting unit. According to the present disclosure, the first anode portion and the second anode portion are arranged in the pixel display component, and the first anode portion has a better effect on diverging light emitted from the light-emitting unit. In this way, the display effect of a location of the pixel display component is improved under the premise of ensuring light transmittance of the location of the pixel display component in the display screen.
In an embodiment, the light-emitting unit may correspond to different anode portions, and corresponding light-emitting unit portions may be designed, respectively.
The anode 502 includes a first anode portion 502a and a second anode portion 502b arranged in a direction parallel to the display screen. In an embodiment, a material of the first anode portion 502a is a light-transmitting material, and a material of the second anode portion 502b includes a non-light-transmitting material.
In an embodiment, the direction parallel to the display screen may be the transverse indication direction as shown in
In an embodiment, the first anode portion 502a may surround the second anode portion 502b, or the second anode portion 502b may surround the first anode portion 502a.
In some embodiments, the anode in the above pixel display component may include at least two first anode portions, and/or the anode in the above pixel display component may include at least two second anode portions. For example,
In an embodiment, the locations of the first anode portion 502a and the second anode portion 502b transversally arranged may be changed to form a case where the first anode portion 502a does not completely surround the second anode portion 502b.
In an embodiment, a material of the first anode portion may be a light-transmitting material, and a material of the second anode portion may be a non-light-transmitting material. In an embodiment, the light-transmitting material and the non-light-transmitting material may be defined by the light transmittance of the material. For example, if the light transmittance of a first material is not less than that of the ITO material, the first material may be referred to as the light-transmitting material. If the light transmittance of a second material is less than that of the ITO material, the first material may be referred to as the non-light-transmitting material.
Referring back to
In an embodiment, the light-emitting unit 501 may further include a first light-emitting unit portion 501a and a second light-emitting unit portion 501b.
The first light-emitting unit portion 501a corresponds to the first anode portion 502a, and the second light-emitting unit portion 501b corresponds to the second anode portion 502b.
As shown in
In an embodiment, the first light-emitting unit portion 501a and the second light-emitting unit portion 501b are separated by a pixel define layer (PDL). As shown in
In an embodiment, the first light-emitting unit portion 501a may be connected to the second light-emitting unit portion 501b.
In an embodiment, the light-emitting materials used in the first light-emitting unit portion and the second light-emitting unit portion may be arbitrarily configured by the developers. In an embodiment, the constituent material of the light-emitting unit 501 is a red OLED material, a green OLED material, or a blue OLED material. The first light-emitting unit portion may be made of any one of the above three OLED materials, and the second light-emitting unit portion may also be made of any one of the above three OLED materials. In an embodiment, the first light-emitting unit portion on the left of the first light-emitting unit as shown in
In an embodiment, the constituent material of the first anode portion 502.a may be an indium tin oxide (ITO) material, or the constituent material of the first anode portion 502a may be a material higher than the ITO material in light transmittance. The constituent material of the second anode portion 502b may use a mixed material or laminated material of the ITO material and a silver material. The constituent material of the second anode portion may be the same as the material used for the anode as shown in
In an embodiment, the constituent material of the cathode may be a silver-magnesium mixed material, or the constituent material of the cathode may be a material higher than the silver-magnesium mixed material in light transmittance.
In the embodiments of the present disclosure, a pixel display component is used in the display screen, and the pixel display component includes a light-emitting unit and an anode. The anode includes a first anode portion and a second anode portion arranged in a direction parallel to the display screen. The material of the first anode portion may be a light-transmitting material, and the material of the second anode portion may include a non-light-transmitting material. The light-emitting unit is arranged between the cathode and the anode of the display screen, and the anode is arranged between the substrate of the display screen and the light-emitting unit. According to the present disclosure, the first anode portion and the second anode portion are arranged in the pixel display component, and the first anode portion has a better effect on diverging light emitted from the light-emitting unit. In this way, the display effect of a location of the pixel display component is improved under the premise of ensuring light transmittance of the location of the pixel display component in the display screen.
The first pixel display component 1201 includes a light-emitting unit 1205 and an anode 1206. In an embodiment, as shown in
In an embodiment, the anode portions in the second pixel display component 1202 of the screen display component may be structurally the same as those in the first screen display component 1201. That is, both the second pixel display component 1202 and the first pixel display component 1201 may be the pixel display components as shown in
In an embodiment, the drive circuit 1204 may be arranged at a location other than the location of the at least one pixel display component, and the drive circuit 1204 is electrically connected to the at least one pixel display component. In an embodiment, as shown in
In an embodiment, the drive circuit 1204 as shown in
In an embodiment, the display screen 1400 may further include at least one second screen display component, and the anode of the second screen display component is made of a light-transmitting material. For example, in
In an embodiment, the first screen region 1503 may further include a second screen display component 1504, and the second screen display component 1504 is a screen display component provided with the pixel display component as shown in any one of the
In an embodiment, a proportion of a non-light-transmission area of the pixel display component in the first screen display component is positively correlated with a center distance. The proportion of the non-light-transmission area is a ratio of an area of the second anode portion in the pixel display component to an area of the anode in the pixel display component, and the center distance is a distance between a center of the anode and a center of the under-screen component.
In an embodiment, when a first screen display component is configured in the first screen region, the area of the second anode portion of the pixel display component in the first screen display component may be determined according to the distance between the center of the anode in the first screen display component and the center of the under-screen component. For example, the area of the second anode portion occupying the anode of the pixel display component is positively correlated with the distance between the center of the anode in the first screen display component and the center of the under-screen component.
In an embodiment, the under-screen component 1501 (
In the embodiments of the present disclosure, a pixel display component is used in the display screen, and the pixel display component includes a light-emitting unit and an anode. The anode includes a first anode portion and a second anode portion arranged in a direction parallel to the display screen. The material of the first anode portion may be a light-transmitting material, and the material of the second anode portion may include a non-light-transmitting material. The light-emitting unit is arranged between the cathode and the anode of the display screen, and the anode is arranged between the substrate of the display screen and the light-emitting unit. According to the present disclosure, the first anode portion and the second anode portion are arranged in the pixel display component, and the first anode portion has a better effect on diverging light emitted from the light-emitting unit. In this way, the display effect of a location of the pixel display component is improved under the premise of ensuring light transmittance of the location of the pixel display component in the display screen.
Other embodiments of the present disclosure will be apparent to those skilled in the art in consideration of the specification and upon practice of the invention disclosed here. The present disclosure is intended to cover any variations, uses, or adaptations of the present disclosure following the general principles thereof and including such departures from the present disclosure as come within known or customary practice in the art. It is intended that the specification and embodiments be considered as exemplary only, with a true scope and spirit of the present disclosure being indicated by the following claims.
It will be appreciated that the present disclosure is not limited to the exact construction that has been described above and illustrated in the accompanying drawings, and that various modifications and changes can be made without departing from the scope thereof. It is intended that the scope of the present disclosure only be limited by the appended claims.
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